材料科学
光热治疗
涂层
光热效应
纳米技术
碳纳米管
粘附
图层(电子)
复合材料
光电子学
复合数
热的
相对湿度
辐照
结冰
超疏水涂料
电压
湿度
工作(物理)
表面光洁度
热稳定性
保温
作者
Haowei Bian,Yiliang Lu,Yu Cui,Guohui Wang,Fandi Meng,Ronghui Liu,Fuhui Wang,Li Liu
标识
DOI:10.1002/adfm.202531058
摘要
ABSTRACT Superhydrophobic surfaces integrating both photothermal and electrothermal effects are regarded as one of the most promising approaches for all‐weather anti‐/de‐icing. However, their practical application is still hindered by two major challenges: the instability of the air layer and excessive energy consumption. Inspired by the densely curved/coiled morphology of Antarctic lichens, a multilayer semi‐enclosed air cavity structure was constructed. This structure forms a stable air‐based thermal insulation layer, which reduces ice adhesion and markedly prolongs the icing delay time. At −20°C, the icing delay time reaches 3578 ± 120.10 s. In addition, Multi‐Walled Carbon Nanotubes (MWCNTs) effectively enhance the photothermal conversion performance, while the incorporation of ZIF‐MXene facilitates charge transport and broadens light absorption. At −20°C and 60% Relative Humidity (RH), the surface temperature rapidly increased to 29.2 ± 1.40°C under 1 sun irradiation (photothermal), to 117.4 ± 3.67°C under an applied voltage of 8 V (electrothermal), and to 139 ± 3.80°C (photothermal + electrothermal). These results demonstrate that this biomimetic composite coating possesses both highly efficient photothermal and electrothermal de‐icing capabilities in low‐temperature environments. This work offers a novel approach for designing highly efficient, multifunctional anti‐/de‐icing surfaces.
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